EP4236699A1 - Methods of increasing magnesium bioavailability and absorption - Google Patents

Methods of increasing magnesium bioavailability and absorption

Info

Publication number
EP4236699A1
EP4236699A1 EP21887504.5A EP21887504A EP4236699A1 EP 4236699 A1 EP4236699 A1 EP 4236699A1 EP 21887504 A EP21887504 A EP 21887504A EP 4236699 A1 EP4236699 A1 EP 4236699A1
Authority
EP
European Patent Office
Prior art keywords
magnesium
ascorbate
subject
pharmaceutical composition
absorption
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP21887504.5A
Other languages
German (de)
French (fr)
Other versions
EP4236699A4 (en
Inventor
Shane Christopher MORGAN
Ren A. GONZALEZ
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Balchem Corp
Original Assignee
Balchem Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Balchem Corp filed Critical Balchem Corp
Publication of EP4236699A1 publication Critical patent/EP4236699A1/en
Publication of EP4236699A4 publication Critical patent/EP4236699A4/en
Pending legal-status Critical Current

Links

Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/33Heterocyclic compounds
    • A61K31/335Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin
    • A61K31/365Lactones
    • A61K31/375Ascorbic acid, i.e. vitamin C; Salts thereof
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K33/00Medicinal preparations containing inorganic active ingredients
    • A61K33/06Aluminium, calcium or magnesium; Compounds thereof, e.g. clay
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P3/00Drugs for disorders of the metabolism
    • A61P3/02Nutrients, e.g. vitamins, minerals

Definitions

  • the present disclosure relates to compositions and methods of increasing magnesium bioavailability and absorption.
  • Magnesium is an essential mineral, and is involved in hundreds of biochemical reactions in vivo, including protein synthesis, muscle and nerve functioning, bone development, energy production, the maintenance of normal heart rhythm, and the regulation of glucose and blood pressure. Poor dietary intake of magnesium has become increasingly common. Over time, low magnesium can increase the risk of illnesses, including high blood pressure and heart disease, diabetes mellitus type 2, osteoporosis, and migraines.
  • Magnesium deficiency may by caused by gastrointestinal or kidney issues. Gastrointestinal causes include inadequate dietary intake of magnesium, reduced gastrointestinal absorption or increased gastrointestinal loss due to rapid gastrointestinal transit time. Kidney causes involve increased excretion of magnesium.
  • the magnesium source may include a magnesium salt or a magnesium chelate.
  • the ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate.
  • the magnesium source and the ascorbate may be formulated into a single composition.
  • the magnesium source and the ascorbic acid may be administered separately, but within 15 minutes of each other.
  • the ratio of the magnesium to the ascorbic acid may be between about 1 :1 to about 5:1 .
  • the magnesium and the ascorbate may be administered orally.
  • the method may increase absorption by at least 55%.
  • the absorption may be via the subject’s gastrointestinal tract.
  • the subject may be a livestock animal, a human, or a non-human primate.
  • the magnesium may be a magnesium salt or a magnesium chelate.
  • the ascorbate may be from ascorbic acid or from an ascorbate salt, such as magnesium ascorbate.
  • the ratio of the magnesium to the ascorbic acid in the pharmaceutical composition may be about 1 :1 to about 5:1 .
  • the magnesium and the ascorbate may be administered orally.
  • the pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid.
  • the method may increase absorption by at least 55%.
  • the absorption may occur in the subject’s gastrointestinal tract.
  • the subject may be a livestock animal, a human, or a non-human primate.
  • the magnesium may be a magnesium salt or a magnesium chelate.
  • the ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate.
  • the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • the magnesium and the ascorbate may be administered orally.
  • the pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid.
  • the method may increase absorption by at least 55%.
  • the absorption may be in the subject’s gastrointestinal tract.
  • the subject may be a livestock animal, a human, or a non-human primate.
  • a method for decreasing side effects from magnesium supplementation in a subject comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
  • the side effects may include one or more of stomach upset, nausea, diarrhea, and vomiting.
  • the magnesium may be a magnesium salt or a magnesium chelate.
  • the ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate.
  • the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • the magnesium and the ascorbate may be administered orally.
  • the pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid.
  • Absorption of the magnesium may be via the mammal’s gastrointestinal tract.
  • the subject may be a livestock animal, a human, or a non-human primate.
  • the magnesium may be a magnesium salt or a magnesium chelate.
  • the ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate.
  • the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • the magnesium and the ascorbate may be administered orally.
  • the pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid.
  • the method may increase absorption by at least 55%.
  • the absorption may be via the subject’s gastrointestinal tract.
  • the subject may be a livestock animal, a human, or a non-human primate.
  • FIGs. 1 A, 1 B, and 1C depict graphs illustrating the six different treatment solutions used in Caco-2 in vitro transport assays (Fig. 1A), increasing magnesium absorption with increasing ascorbic acid concentration in an in vitro Caco-2 transport assay (Fig. 1 B), and the reproducibility of the effect in two different experimental iterations (Fig. 1 C).
  • Fig. 2 depicts a graph showing magnesium transport measured in an in vitro Caco-2 model for several different treatments.
  • Fig. 3 depicts a graph illustrating that the increase in magnesium transport seen with magnesium ascorbate is greater than equivalent concentrations of magnesium chloride in a Caco-2 (HTB-37) in vitro model.
  • Fig. 4 depicts a graph showing Mg absorption of different Mg treatments.
  • Fig. 5 depicts a graph illustrating the viability over time of cells incubated with various solutions.
  • Caco-2 cells were propagated in T-75 tissue culture flasks for 14 days. The cells were then incubated with either 0, 5, 25, or 50mM ascorbic acid for 240 min. Fluorescent probes were used to determine viability.
  • compositions and methods to increase magnesium bioavailability and absorption in a subject encompasses compositions and methods to increase magnesium bioavailability and absorption in a subject.
  • compositions of the present disclosure comprise a magnesium source and ascorbate. Each of these components are described in more detail below.
  • a composition of the present disclosure comprises a magnesium source.
  • Many magnesium sources are suitable, as long as the source provides bioavailable magnesium to the subject.
  • the magnesium source may be a magnesium salt.
  • Such salts may be inorganic or organic salts, and the present disclosure contemplates salts with different hydration states.
  • Non-limiting examples of such salts may include magnesium chloride, Mg sulfate, Mg bromide, Mg carbonate, Mg phosphates, etc. as inorganic salts.
  • Mg citrate, Mg malate, or dimagnesium malate, Mg threonate, Mg taurate, Mg orotate, and other similar compounds can be targeted as organic salts.
  • the magnesium salt may be magnesium ascorbate.
  • the magnesium source may be a magnesium chelate.
  • chelates may include magnesium bis-amino acid chelates, di-amino acid chelates, or tri-amino acid chelates.
  • Specific examples of bis- amino acid chelates include magnesium bisglycinate and magnesium lysinate glycinate, although one of skill in the art will appreciate that other Mg chelates will also work.
  • a di-amino acid suitable for a magnesium di-amino acid chelate of the present disclosure includes di-amino acids capable of forming at least two coordinate bonds with a magnesium ion.
  • a di-amino acid suitable for use in the present disclosure includes di-amino acids capable of forming between 2 and 6 coordinate bonds with respect to magnesium.
  • a di-amino acid suitable for use in the present disclosure forms chelate bonds at all Lewis acid locations within the di-amino acid. In some further embodiments, a di-amino acid suitable for use in the present disclosure does not form chelate bonds via carbonyl groups. In other embodiments, a di-amino acid suitable for use in the present disclosure does form chelate bonds via a carbonyl group.
  • the di-amino acid is di-glycine, also called herein G2, 2-[(2-Aminoacetyl)amino]acetic acid, or glycylglycine.
  • the di-amino acid may be di-aspartic acid (D2), di-glutamic acid (E2), dihistidine (H2), di-serine (S2), or di-tyrosine (Y2).
  • the di-amino acid may be comprised of two amino acids, each selected form the group consisting of glycine (G), aspartic acid (D), glutamic acid (E), histidine (H), serine (S), and tyrosine (Y).
  • G glycine
  • D aspartic acid
  • E glutamic acid
  • H histidine
  • S serine
  • Y tyrosine
  • a di-amino acid may be GD, GE, GH, GS, GY, GG, DG, ED, DE, or other combinations.
  • a tri-amino acid suitable for a magnesium tri-amino acid chelate of the present disclosure includes tri-amino acids capable of forming at least two coordinate bonds with a magnesium ion.
  • a tri-amino acid suitable for use in the present disclosure includes tri-amino acids capable of forming between 2 and 6 coordinate bonds with respect to magnesium.
  • a tri-amino acid suitable for use in the present disclosure forms chelate bonds at all Lewis acid locations within the tri-amino acid. In some further embodiments, a tri-amino acid suitable for use in the present disclosure does not form chelate bonds via carbonyl groups. In other embodiments, a tri-amino acid suitable for use in the present disclosure does form chelate bonds via a carbonyl group.
  • the tri-amino acid is tri-glycine, also called herein Gs, 2-[[2-[(2-aminoacetyl)amino]acetyl]amino]acetic acid, or glycylglycylglycine.
  • the tri-amino acid may be tri-aspartic acid (Ds), tri-glutamic acid (Es), trihistidine (Hs), tri-serine (S3), or tri-tyrosine (Ys).
  • the tri-amino acid may be comprised of three amino acids, each selected from the group consisting of glycine (G), aspartic acid (D), glutamic acid (E), histidine (H), serine (S), and tyrosine (Y).
  • G glycine
  • D aspartic acid
  • E glutamic acid
  • H histidine
  • S serine
  • Y tyrosine
  • a tri-amino acid may be GDG, GGD, DGG, EDG, GDE, or other combinations.
  • the magnesium source may be a magnesium base, such as Mg oxide or Mg hydroxide.
  • a composition of the present disclosure comprises ascorbate.
  • the ascorbate may be derived from any ascorbate source that can be administered to a subject.
  • the ascorbate may be from ascorbic acid.
  • the ascorbate may be from an ascorbate salt.
  • the ascorbate may be magnesium ascorbate.
  • the ascorbate may be selected from the group consisting of calcium ascorbate, sodium ascorbate, and iron ascorbate. (c) ratio
  • the molar ratio of ascorbate to magnesium my vary from about 0.75:1 to about 5: 1 or greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1 . In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 2:1 .
  • the molar ratio of ascorbate to magnesium may be about 0.75:1 , 1 :1 , 1 .25:1 , 1 .5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
  • a composition of the present invention may comprise at least about 25mg to about 750mg magnesium.
  • a composition of the present invention may comprise about 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 145, 150, 155, 160, 165, 170, 175, 180, 185, 190, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255,
  • a composition of the present invention may comprise about 25 to about 100, about 75 to about 200, about 175 to about 300, about 275 to about 400, about 375 to about 500, about 475 to about 600, about 575 to about 700, about 675 to about 750, or about 700 to more than 750 mg magnesium.
  • a composition of the present invention may be administered once daily, or may be administered more than once daily.
  • compositions formulated to be administered more than once daily may comprise less magnesium than once a day formulations.
  • the increased magnesium bioavailability and absorption from a composition of the present invention may mean that less magnesium is needed to achieve a particular in vivo magnesium level in a subject.
  • a pharmaceutical formulation comprising a composition detailed above.
  • a pharmaceutical formulation may be prepared for oral administration, or any other suitable route of administration.
  • a pharmaceutical formulation comprises a composition as described above, as an active ingredient, and at least one pharmaceutically acceptable carrier.
  • oral as used herein, includes sub-lingual and gavage.
  • the pharmaceutical formulation may be formulated into various dosage forms and administered by a number of different means that will deliver a therapeutically effective amount of the active ingredient.
  • Such compositions can be administered in dosage unit formulations containing conventional nontoxic pharmaceutically acceptable carriers, adjuvants, and vehicles as desired.
  • Formulation of drugs is discussed in, for example, Gennaro, A. R., Remington's Pharmaceutical Sciences, Mack Publishing Co., Easton, Pa. (18th ed, 1995), and Liberman, H. A. and Lachman, L., Eds., Pharmaceutical Dosage Forms, Marcel Dekker Inc., New York, N.Y. (1980).
  • Oral formulations generally may include an inert diluent or an edible carrier. Oral formulations may be enclosed in gelatin capsules, compressed into tablets, or otherwise be formulated as a troche, a powder, a granule, a gummy, a soft gel, a soft chew, a chewable tablet, or the like. Oral compositions may also be prepared using a fluid carrier. Pharmaceutically compatible binding agents and/or adjuvant materials may be included as part of the composition.
  • the active components of a solid-type dosage form for oral administration can be mixed with at least one additive, such as sucrose, lactose, cellulose, mannitol, trehalose, raffinose, maltitol, dextran, starches, agar, alginates, chitins, chitosans, pectins, gum tragacanth, gum arabic, gelatin, collagen, casein, albumin, synthetic or semisynthetic polymer, or glyceride.
  • at least one additive such as sucrose, lactose, cellulose, mannitol, trehalose, raffinose, maltitol, dextran, starches, agar, alginates, chitins, chitosans, pectins, gum tragacanth, gum arabic, gelatin, collagen, casein, albumin, synthetic or semisynthetic polymer, or glyceride.
  • dosage forms can also contain other type(s) of additives, e.g., inactive diluting agent, lubricant such as magnesium stearate, paraben, preserving agent such as sorbic acid, ascorbic acid, alpha-tocopherol, antioxidants such as cysteine, disintegrators, binders, thickeners, buffering agents, pH adjusting agents, sweetening agents, flavoring agents or perfuming agents.
  • additives e.g., inactive diluting agent, lubricant such as magnesium stearate, paraben, preserving agent such as sorbic acid, ascorbic acid, alpha-tocopherol, antioxidants such as cysteine, disintegrators, binders, thickeners, buffering agents, pH adjusting agents, sweetening agents, flavoring agents or perfuming agents.
  • Liquid dosage forms for oral administration may comprise the active components mixed with at least one aqueous solvent.
  • Liquid oral compositions may further comprise preserving agents, buffering agents
  • a therapeutically effective dose for any particular subject will depend upon a variety of factors including the disorder being treated and the severity of the disorder; activity of the specific compound employed; the specific composition employed; the age, body weight, general health, sex and diet of the subject; the time of administration; the route of administration; the rate of excretion of the composition employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed; and like factors well known in the medical arts (see e.g., Koda-Kimble et al.
  • nutraceutical formulation comprising a composition detailed above.
  • a nutraceutical formulation comprises a composition described above, as an active ingredient, and an edible carrier.
  • the nutraceutical may be a food or food ingredient that comprises a composition described above. Suitable edible carriers are known in the art.
  • a composition of the invention comprises magnesium ascorbate.
  • a composition of the invention comprises magnesium bisglycinate and ascorbic acid, in a molar ratio of 1 :1 to 5:1 , preferably from 2:1 to 4: 1 .
  • a composition of the invention comprises magnesium chloride and ascorbic acid, in a molar ratio of 1 :1 to 5:1 , preferably from 2:1 to 4: 1 .
  • a composition of the invention comprises magnesium oxide and ascorbic acid, in a molar ratio of 3:2.
  • a composition of the invention comprises magnesium citrate and ascorbic acid, in a molar ratio of 3:2.
  • the present disclosure encompasses methods of increasing absorption and bioavailability of magnesium in a subject, methods of treating magnesium deficiency in a subject, and methods of decreasing the side effects of magnesium administration to a subject.
  • absorption refers to uptake of magnesium from the lumen of the Gl tract.
  • Bioavailability is used herein to refer to the amount of magnesium that enters systemic circulation after an oral dosage (i.e. the amount absorbed minus the amount lost to the first pass effect).
  • One embodiment of the present disclosure encompasses a method for increasing magnesium absorption in a subject.
  • the method comprises administering a magnesium source and ascorbate to the subject.
  • suitable sources of magnesium are described in section I above.
  • suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride.
  • Suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
  • the magnesium source and the ascorbate source may be formulated into a single composition. In other embodiments, the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other.
  • the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other.
  • the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
  • the ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1.
  • the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
  • a method as described herein may be used to increase absorption of magnesium in the Gl tract of a subject at least 55, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, 300,
  • absorption of magnesium in the Gl tract of a subject may increase at least 200%-600%, 200%-400%, 300%-500%, or 400%-600% with a method described herein.
  • the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well.
  • Formulations are described in section I above.
  • the present disclosure also encompasses methods for increasing magnesium bioavailability in a subject.
  • the method comprises administering a magnesium source and ascorbate to the subject.
  • Suitable sources of magnesium are described in section I above.
  • suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride.
  • suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
  • the magnesium source and the ascorbate source may be formulated into a single composition.
  • the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other.
  • the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other.
  • the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
  • the ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1.
  • the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
  • a method as described herein may be used to increase bioavailability of magnesium in the Gl tract of a subject at least 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, 300, or greater than 300% when compared to the magnesium source alone.
  • the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well. Formulations are described in section I above.
  • One embodiment of the present disclosure encompasses a method for decreasing Gl side effects from administering magnesium to a subject.
  • the method comprises administering a magnesium source and ascorbate to the subject. Because the methods of the present disclosure result in increased absorption and bioavailability of magnesium, less magnesium needs to be administered to the subject to achieve the desired magnesium levels in the subject.
  • Suitable sources of magnesium are described in section I above.
  • suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride.
  • Suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
  • the magnesium source and the ascorbate source may be formulated into a single composition.
  • the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other.
  • the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other.
  • the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
  • the ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1.
  • the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
  • a method as described herein may be used to decrease Gl side effects known to be associated with magnesium supplementation. For instance, a method described herein may reduce stomach upset, nausea, vomiting, or diarrhea.
  • the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well.
  • Formulations are described in section I above.
  • the present disclosure also encompasses methods of treating magnesium deficiency in a subject.
  • the method comprises administering a magnesium source and ascorbate to the subject.
  • Suitable sources of magnesium are described in section I above.
  • suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride.
  • suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
  • the magnesium source and the ascorbate source may be formulated into a single composition.
  • the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other.
  • the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other.
  • the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
  • the ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1.
  • the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
  • the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well.
  • Formulations are described in section I above.
  • a therapeutically effective dose level for any particular subject will depend upon a variety of factors including the specific composition employed; the age, body weight, general health, sex and diet of the subject; the time of administration; the route of administration; the rate of excretion of the composition employed; the duration of the treatment; drugs used in combination or coincidental with the specific composition employed; and like factors well known in the medical arts (see e.g., Koda-Kimble et al.
  • Methods of the present disclosure encompasses administration of a composition described herein as a single event or over a time course of treatment.
  • a composition can be administered daily, weekly, bi-weekly, or monthly.
  • the time course of treatment will usually be at least several days. Certain conditions could extend treatment from several days to several weeks. For example, treatment could extend over one week, two weeks, or three weeks. For more chronic conditions, treatment could extend from several weeks to several months or even a year or more.
  • Methods of the present invention are suitable for any subject capable of absorbing magnesium via a gastrointestinal tract.
  • the subject is a vertebrate, such as a mammal or a bird.
  • suitable subjects may include a rodent, a human, a livestock animal, a companion animal, or a zoological animal.
  • a subject may be a rodent, e.g., a mouse, a rat, a guinea pig, etc.
  • a subject may be a livestock animal.
  • suitable livestock animals may include chickens, turkeys, pigs, cows, horses, goats, sheep, llamas and alpacas.
  • a subject may be a companion animal.
  • companion animals may include pets such as dogs, cats, rabbits, and birds.
  • a subject may be a zoological animal.
  • a “zoological animal” refers to an animal that may be found in a zoo. Such animals may include non-human primates, large cats, wolves, and bears.
  • a subject may be human.
  • a subject may be deficient in magnesium.
  • Embodiment 1 A method for increasing magnesium absorption in a subject, the method comprising administering a magnesium source and ascorbate to the subject.
  • Embodiment 2 The method of embodiment 1 , wherein the magnesium source is a magnesium salt.
  • Embodiment 3 The method of embodiment 1 , wherein the magnesium source is a magnesium chelate.
  • Embodiment 4 The method of embodiment 1 , wherein the ascorbate is from ascorbic acid.
  • Embodiment 5 The method of embodiment 1 , wherein the ascorbate is from an ascorbate salt.
  • Embodiment 6 The method of embodiment 1 , wherein the ascorbate is magnesium ascorbate.
  • Embodiment 7 The method of embodiment 1 , wherein the magnesium source and the ascorbate are formulated into a single composition.
  • Embodiment 8 The method of embodiment 1 , wherein the magnesium source and the ascorbic acid are administered separately, but within 15 min of each other.
  • Embodiment 9 The method of embodiment 1 , wherein the ratio of magnesium to ascorbic acid is between about 1 :1 to about 5:1 .
  • Embodiment 10 The method of embodiment 1 , wherein the absorption is increased at least 55%.
  • Embodiment 11 The method of embodiment 1 , wherein absorption is via the subject’s Gl tract.
  • Embodiment 12 The method of embodiment 1 , wherein the magnesium and ascorbate are administered orally.
  • Embodiment 13 The method of embodiment 1 , wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
  • Embodiment 14 A method for increasing magnesium absorption in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
  • Embodiment 15 The method of embodiment 14, wherein the magnesium is a magnesium salt.
  • Embodiment 16 The method of embodiment 14, wherein the magnesium is a magnesium chelate.
  • Embodiment 17 The method of embodiment 14, wherein the ascorbate is from ascorbic acid.
  • Embodiment 18 The method of embodiment 14, wherein the ascorbate is from an ascorbate salt.
  • Embodiment 19 The method of embodiment 14, wherein the ascorbate is magnesium ascorbate.
  • Embodiment 20 The method of embodiment 14, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • Embodiment 21 The method of embodiment 14, wherein the absorption is increased at least 55%.
  • Embodiment 22 The method of embodiment 14, wherein absorption is via the subject’s Gl tract.
  • Embodiment 23 The method of embodiment 14, wherein the pharmaceutical composition is administered orally.
  • Embodiment 24 The method of embodiment 14, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
  • Embodiment 25 The method of embodiment 14, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
  • Embodiment 26 The method of embodiment 14, wherein the pharmaceutical composition is a liquid.
  • Embodiment 27 A method for increasing magnesium bioavailability in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
  • Embodiment 28 The method of embodiment 27, wherein the magnesium is a magnesium salt.
  • Embodiment 29 The method of embodiment 27, wherein the magnesium is a magnesium chelate.
  • Embodiment 30 The method of embodiment 27, wherein the ascorbate is from ascorbic acid.
  • Embodiment 31 The method of embodiment 27, wherein the ascorbate is from an ascorbate salt.
  • Embodiment 32 The method of embodiment 27, wherein the ascorbate is magnesium ascorbate.
  • Embodiment 33 The method of embodiment 27, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • Embodiment 34 The method of embodiment 27, wherein the absorption is increased at least 55%.
  • Embodiment 35 The method of embodiment 27, wherein absorption is via the subject’s Gl tract.
  • Embodiment 36 The method of embodiment 27, wherein the pharmaceutical composition is administered orally.
  • Embodiment 37 The method of embodiment 27, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
  • Embodiment 38 The method of embodiment 27, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
  • Embodiment 39 The method of embodiment 27, wherein the pharmaceutical composition is a liquid.
  • Embodiment 40 A method for decreasing side effects from magnesium supplementation in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
  • Embodiment 41 The method of embodiment 40, wherein the magnesium is a magnesium salt.
  • Embodiment 42 The method of embodiment 40, wherein the magnesium is a magnesium chelate.
  • Embodiment 43 The method of embodiment 40, wherein the ascorbate is from ascorbic acid.
  • Embodiment 44 The method of embodiment 40, wherein the ascorbate is from an ascorbate salt.
  • Embodiment 45 The method of embodiment 40, wherein the ascorbate is magnesium ascorbate.
  • Embodiment 46 The method of embodiment 40, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • Embodiment 47 The method of embodiment 40, wherein the side effects include one or more of stomach upset, nausea, diarrhea, and vomiting.
  • Embodiment 48 The method of embodiment 40, wherein absorption is via the mammal’s Gl tract.
  • Embodiment 49 The method of embodiment 40, wherein the pharmaceutical composition is administered orally.
  • Embodiment 50 The method of embodiment 40, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
  • Embodiment 51 The method of embodiment 40, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
  • Embodiment 52 The method of embodiment 40, wherein the pharmaceutical composition is a liquid.
  • Embodiment 53 A method of treating magnesium deficiency in a subject, the method comprising administering magnesium and ascorbate to the subject.
  • Embodiment 54 The method of embodiment 53, wherein the magnesium is a magnesium salt.
  • Embodiment 55 The method of embodiment 53, wherein the magnesium is a magnesium chelate.
  • Embodiment 56 The method of embodiment 53, wherein the ascorbate is from ascorbic acid.
  • Embodiment 57 The method of embodiment 53, wherein the ascorbate is from an ascorbate salt.
  • Embodiment 58 The method of embodiment 53, wherein the ascorbate is magnesium ascorbate.
  • Embodiment 59 The method of embodiment 53, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
  • Embodiment 60 The method of embodiment 53, wherein the absorption is increased at least 55%.
  • Embodiment 61 The method of embodiment 53, wherein absorption is via the subject’s Gl tract.
  • Embodiment 62 The method of embodiment 53, wherein the pharmaceutical composition is administered orally.
  • Embodiment 63 The method of embodiment 53, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
  • Embodiment 64 The method of embodiment 53, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
  • Embodiment 65 The method of embodiment 53, wherein the pharmaceutical composition is a liquid.
  • Caco-2 cells were used to model in vitro magnesium absorption of intestinal cells. The increase in magnesium absorption is dependent on the ratio of magnesium to ascorbic acid. Six different solutions, with magnesium and varying ratios of ascorbate were tested. Each solution comprised 20mM of magnesium. Ascorbic acid ranged from 0 to 50mM, as shown in Fig.1 A. Cells were exposed to one of the six solutions for 4 hours, then the basal media was analyzed for magnesium, using a colorimetric test. Magnesium transport increased with ascorbic acid concentration, as shown in Fig. 1 B. The highest rate of magnesium transport was seen between 20 and 30mM of ascorbic acid. Of note, the pattern is non-linear.
  • magnesium ascorbate magnesium bisglycinate, magnesium orotate, magnesium threonate, and magnesium malate (trihydrate and hexahydrate; abbreviated MgM3H20 or MgM6H20 respectively in Fig. 2).
  • MgM3H20 or MgM6H20 magnesium malate
  • Magnesium ascorbate resulted in a statistically significant higher transport rate than any other magnesium solution tested, (see Fig. 2)

Landscapes

  • Health & Medical Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Medicinal Chemistry (AREA)
  • Pharmacology & Pharmacy (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Animal Behavior & Ethology (AREA)
  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Epidemiology (AREA)
  • Inorganic Chemistry (AREA)
  • Nutrition Science (AREA)
  • Engineering & Computer Science (AREA)
  • Bioinformatics & Cheminformatics (AREA)
  • Diabetes (AREA)
  • Hematology (AREA)
  • Obesity (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • General Chemical & Material Sciences (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • Organic Chemistry (AREA)
  • Medicinal Preparation (AREA)
  • Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)

Abstract

The present disclosure relates to compositions and methods of increasing magnesium bioavailability and absorption.

Description

METHODS OF INCREASING MAGNESIUM BIOAVAI LABILITY AND ABSORPTION
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 63/106,543 entitled “METHODS OF INCREASING MAGNESIUM BIOAVAILABILITY AND ABSORPTION” filed on October 28, 2020, the entirety of which is incorporated herein by reference.
FIELD OF THE DISCLOSURE
[0002] The present disclosure relates to compositions and methods of increasing magnesium bioavailability and absorption.
BACKGROUND OF THE DISCLOSURE
[0003] Magnesium is an essential mineral, and is involved in hundreds of biochemical reactions in vivo, including protein synthesis, muscle and nerve functioning, bone development, energy production, the maintenance of normal heart rhythm, and the regulation of glucose and blood pressure. Poor dietary intake of magnesium has become increasingly common. Over time, low magnesium can increase the risk of illnesses, including high blood pressure and heart disease, diabetes mellitus type 2, osteoporosis, and migraines.
[0004] Magnesium deficiency may by caused by gastrointestinal or kidney issues. Gastrointestinal causes include inadequate dietary intake of magnesium, reduced gastrointestinal absorption or increased gastrointestinal loss due to rapid gastrointestinal transit time. Kidney causes involve increased excretion of magnesium.
[0005] There is a need in the art for bioavailable magnesium compositions to aid in increasing magnesium levels in a subject.
SUMMARY OF THE DISCLOSURE
[0006] Disclosed herein is a method for increasing magnesium absorption in a subject comprising administering a magnesium source and ascorbate to the subject. The magnesium source may include a magnesium salt or a magnesium chelate. The ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate. The magnesium source and the ascorbate may be formulated into a single composition. The magnesium source and the ascorbic acid may be administered separately, but within 15 minutes of each other. The ratio of the magnesium to the ascorbic acid may be between about 1 :1 to about 5:1 . The magnesium and the ascorbate may be administered orally. The method may increase absorption by at least 55%. The absorption may be via the subject’s gastrointestinal tract. The subject may be a livestock animal, a human, or a non-human primate.
[0007] Further provided herein is a method for increasing magnesium absorption in a subject comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The magnesium may be a magnesium salt or a magnesium chelate. The ascorbate may be from ascorbic acid or from an ascorbate salt, such as magnesium ascorbate. The ratio of the magnesium to the ascorbic acid in the pharmaceutical composition may be about 1 :1 to about 5:1 . The magnesium and the ascorbate may be administered orally. The pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid. The method may increase absorption by at least 55%. The absorption may occur in the subject’s gastrointestinal tract. The subject may be a livestock animal, a human, or a non-human primate.
[0008] Further provided herein is a method for increasing magnesium bioavailability in a subject comprising administering a pharmaceutical composition comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The magnesium may be a magnesium salt or a magnesium chelate. The ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate. The ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The magnesium and the ascorbate may be administered orally. The pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid. The method may increase absorption by at least 55%. The absorption may be in the subject’s gastrointestinal tract. The subject may be a livestock animal, a human, or a non-human primate.
[0009] Further provided herein is a method for decreasing side effects from magnesium supplementation in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The side effects may include one or more of stomach upset, nausea, diarrhea, and vomiting. The magnesium may be a magnesium salt or a magnesium chelate. The ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate. The ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The magnesium and the ascorbate may be administered orally. The pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid. Absorption of the magnesium may be via the mammal’s gastrointestinal tract. The subject may be a livestock animal, a human, or a non-human primate.
[0010] Further provided herein is a method of treating magnesium deficiency in a subject, the method comprising administering a magnesium source and ascorbate to the subject. The magnesium may be a magnesium salt or a magnesium chelate. The ascorbate may be from ascorbic acid or an ascorbate salt, such as magnesium ascorbate. The ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The magnesium and the ascorbate may be administered orally. The pharmaceutical composition may be a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule; alternatively, the pharmaceutical composition may be a liquid. The method may increase absorption by at least 55%. The absorption may be via the subject’s gastrointestinal tract. The subject may be a livestock animal, a human, or a non-human primate. BRIEF DESCRIPTION OF THE FIGURES
[0011 ] Figs. 1 A, 1 B, and 1C depict graphs illustrating the six different treatment solutions used in Caco-2 in vitro transport assays (Fig. 1A), increasing magnesium absorption with increasing ascorbic acid concentration in an in vitro Caco-2 transport assay (Fig. 1 B), and the reproducibility of the effect in two different experimental iterations (Fig. 1 C).
[0012] Fig. 2 depicts a graph showing magnesium transport measured in an in vitro Caco-2 model for several different treatments.
[0013] Fig. 3 depicts a graph illustrating that the increase in magnesium transport seen with magnesium ascorbate is greater than equivalent concentrations of magnesium chloride in a Caco-2 (HTB-37) in vitro model.
[0014] Fig. 4 depicts a graph showing Mg absorption of different Mg treatments.
[0015] Fig. 5 depicts a graph illustrating the viability over time of cells incubated with various solutions. Caco-2 cells were propagated in T-75 tissue culture flasks for 14 days. The cells were then incubated with either 0, 5, 25, or 50mM ascorbic acid for 240 min. Fluorescent probes were used to determine viability.
DETAILED DESCRIPTION
[0016] The present disclosure encompasses compositions and methods to increase magnesium bioavailability and absorption in a subject.
I. Compositions
[0017] Compositions of the present disclosure comprise a magnesium source and ascorbate. Each of these components are described in more detail below.
(a) magnesium source
[0018] A composition of the present disclosure comprises a magnesium source. Many magnesium sources are suitable, as long as the source provides bioavailable magnesium to the subject.
[0019] In certain embodiments, the magnesium source may be a magnesium salt. Such salts may be inorganic or organic salts, and the present disclosure contemplates salts with different hydration states. Non-limiting examples of such salts may include magnesium chloride, Mg sulfate, Mg bromide, Mg carbonate, Mg phosphates, etc. as inorganic salts. Mg citrate, Mg malate, or dimagnesium malate, Mg threonate, Mg taurate, Mg orotate, and other similar compounds can be targeted as organic salts.
[0020] In a particular embodiment, the magnesium salt may be magnesium ascorbate.
[0021] In other embodiments, the magnesium source may be a magnesium chelate. Non-limiting examples of such chelates may include magnesium bis-amino acid chelates, di-amino acid chelates, or tri-amino acid chelates. Specific examples of bis- amino acid chelates include magnesium bisglycinate and magnesium lysinate glycinate, although one of skill in the art will appreciate that other Mg chelates will also work.
[0022] A di-amino acid suitable for a magnesium di-amino acid chelate of the present disclosure includes di-amino acids capable of forming at least two coordinate bonds with a magnesium ion. In preferred embodiments, a di-amino acid suitable for use in the present disclosure includes di-amino acids capable of forming between 2 and 6 coordinate bonds with respect to magnesium.
[0023] In some embodiments, a di-amino acid suitable for use in the present disclosure forms chelate bonds at all Lewis acid locations within the di-amino acid. In some further embodiments, a di-amino acid suitable for use in the present disclosure does not form chelate bonds via carbonyl groups. In other embodiments, a di-amino acid suitable for use in the present disclosure does form chelate bonds via a carbonyl group.
[0024] In one embodiment, the di-amino acid is di-glycine, also called herein G2, 2-[(2-Aminoacetyl)amino]acetic acid, or glycylglycine. In other non-limiting embodiments, the di-amino acid may be di-aspartic acid (D2), di-glutamic acid (E2), dihistidine (H2), di-serine (S2), or di-tyrosine (Y2). In still other non-limiting embodiments, the di-amino acid may be comprised of two amino acids, each selected form the group consisting of glycine (G), aspartic acid (D), glutamic acid (E), histidine (H), serine (S), and tyrosine (Y). For instance, a di-amino acid may be GD, GE, GH, GS, GY, GG, DG, ED, DE, or other combinations. [0025] A tri-amino acid suitable for a magnesium tri-amino acid chelate of the present disclosure includes tri-amino acids capable of forming at least two coordinate bonds with a magnesium ion. In preferred embodiments, a tri-amino acid suitable for use in the present disclosure includes tri-amino acids capable of forming between 2 and 6 coordinate bonds with respect to magnesium.
[0026] In some embodiments, a tri-amino acid suitable for use in the present disclosure forms chelate bonds at all Lewis acid locations within the tri-amino acid. In some further embodiments, a tri-amino acid suitable for use in the present disclosure does not form chelate bonds via carbonyl groups. In other embodiments, a tri-amino acid suitable for use in the present disclosure does form chelate bonds via a carbonyl group.
[0027] In one embodiment, the tri-amino acid is tri-glycine, also called herein Gs, 2-[[2-[(2-aminoacetyl)amino]acetyl]amino]acetic acid, or glycylglycylglycine. In other embodiments, the tri-amino acid may be tri-aspartic acid (Ds), tri-glutamic acid (Es), trihistidine (Hs), tri-serine (S3), or tri-tyrosine (Ys). In still other embodiments, the tri-amino acid may be comprised of three amino acids, each selected from the group consisting of glycine (G), aspartic acid (D), glutamic acid (E), histidine (H), serine (S), and tyrosine (Y). For instance, a tri-amino acid may be GDG, GGD, DGG, EDG, GDE, or other combinations.
[0028] In further embodiments, the magnesium source may be a magnesium base, such as Mg oxide or Mg hydroxide.
(b) ascorbate
[0029] A composition of the present disclosure comprises ascorbate. The ascorbate may be derived from any ascorbate source that can be administered to a subject. In one embodiment, the ascorbate may be from ascorbic acid. In another embodiment, the ascorbate may be from an ascorbate salt. In a particular embodiment, the ascorbate may be magnesium ascorbate. In other particular embodiments, the ascorbate may be selected from the group consisting of calcium ascorbate, sodium ascorbate, and iron ascorbate. (c) ratio
[0030] The molar ratio of ascorbate to magnesium my vary from about 0.75:1 to about 5: 1 or greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1 . In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 2:1 . In still other embodiments, the molar ratio of ascorbate to magnesium may be about 0.75:1 , 1 :1 , 1 .25:1 , 1 .5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
(d) dosages
[0031] Generally speaking, a composition of the present invention may comprise at least about 25mg to about 750mg magnesium. In some embodiments, a composition of the present invention may comprise about 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 145, 150, 155, 160, 165, 170, 175, 180, 185, 190, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255,
260, 265, 270, 275, 280, 285, 290, 300, 305, 310, 315, 320, 325, 330, 335, 340, 345,
350, 355, 360, 365, 370, 375, 380, 385, 390, 400, 405, 410, 415, 420, 425, 430, 435,
440, 445, 450, 455, 460, 465, 470, 475, 480, 485, 490, 500, 505, 510, 515, 520, 525,
530, 535, 540, 545, 550, 555, 560, 565, 570, 575, 580, 585, 590, 600, 605, 610, 615,
620, 625, 630, 635, 640, 645, 650, 655, 660, 665, 670, 675, 680, 685, 690, 700, 705,
710, 715, 720, 725, 730, 735, 740, 745, 750, or more than 750mg magnesium.
[0032] In certain embodiments, a composition of the present invention may comprise about 25 to about 100, about 75 to about 200, about 175 to about 300, about 275 to about 400, about 375 to about 500, about 475 to about 600, about 575 to about 700, about 675 to about 750, or about 700 to more than 750 mg magnesium.
[0033] A composition of the present invention may be administered once daily, or may be administered more than once daily. As would be appreciated in the art, compositions formulated to be administered more than once daily may comprise less magnesium than once a day formulations. [0034] Of note, the increased magnesium bioavailability and absorption from a composition of the present invention may mean that less magnesium is needed to achieve a particular in vivo magnesium level in a subject.
(e) formulations
[0035] Another aspect of the present invention is a pharmaceutical formulation comprising a composition detailed above. A pharmaceutical formulation may be prepared for oral administration, or any other suitable route of administration. A pharmaceutical formulation comprises a composition as described above, as an active ingredient, and at least one pharmaceutically acceptable carrier. The term oral, as used herein, includes sub-lingual and gavage.
[0036] The pharmaceutical formulation may be formulated into various dosage forms and administered by a number of different means that will deliver a therapeutically effective amount of the active ingredient. Such compositions can be administered in dosage unit formulations containing conventional nontoxic pharmaceutically acceptable carriers, adjuvants, and vehicles as desired. Formulation of drugs is discussed in, for example, Gennaro, A. R., Remington's Pharmaceutical Sciences, Mack Publishing Co., Easton, Pa. (18th ed, 1995), and Liberman, H. A. and Lachman, L., Eds., Pharmaceutical Dosage Forms, Marcel Dekker Inc., New York, N.Y. (1980).
[0037] Certain embodiments of the invention relate to oral formulations and oral administration. Oral formulations generally may include an inert diluent or an edible carrier. Oral formulations may be enclosed in gelatin capsules, compressed into tablets, or otherwise be formulated as a troche, a powder, a granule, a gummy, a soft gel, a soft chew, a chewable tablet, or the like. Oral compositions may also be prepared using a fluid carrier. Pharmaceutically compatible binding agents and/or adjuvant materials may be included as part of the composition.
[0038] The active components of a solid-type dosage form for oral administration can be mixed with at least one additive, such as sucrose, lactose, cellulose, mannitol, trehalose, raffinose, maltitol, dextran, starches, agar, alginates, chitins, chitosans, pectins, gum tragacanth, gum arabic, gelatin, collagen, casein, albumin, synthetic or semisynthetic polymer, or glyceride. These dosage forms can also contain other type(s) of additives, e.g., inactive diluting agent, lubricant such as magnesium stearate, paraben, preserving agent such as sorbic acid, ascorbic acid, alpha-tocopherol, antioxidants such as cysteine, disintegrators, binders, thickeners, buffering agents, pH adjusting agents, sweetening agents, flavoring agents or perfuming agents. Liquid dosage forms for oral administration may comprise the active components mixed with at least one aqueous solvent. Liquid oral compositions may further comprise preserving agents, buffering agents, pH adjusting agents, sweetening agents, flavoring agents, or the like.
[0039] A therapeutically effective dose for any particular subject will depend upon a variety of factors including the disorder being treated and the severity of the disorder; activity of the specific compound employed; the specific composition employed; the age, body weight, general health, sex and diet of the subject; the time of administration; the route of administration; the rate of excretion of the composition employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed; and like factors well known in the medical arts (see e.g., Koda-Kimble et al. (2004) Applied Therapeutics: The Clinical Use of Drugs, Lippincott Williams & Wilkins, ISBN 0781748453; Winter (2003) Basic Clinical Pharmacokinetics, 4th ed., Lippincott Williams & Wilkins, ISBN 0781741475; Sharqel (2004) Applied Biopharmaceutics & Pharmacokinetics, McGraw-Hill/Appleton & Lange, ISBN 0071375503). For example, it is well within the skill of the art to start doses of the composition at levels lower than those required to achieve the desired therapeutic effect and to gradually increase the dosage until the desired effect is achieved. If desired, the effective daily dose may be divided into multiple doses for purposes of administration. Consequently, single dose compositions may contain such amounts or submultiples thereof to make up the daily dose. It will be understood, however, that the total daily usage of the compounds and compositions of the present disclosure will be decided by one of appropriate skill in the art.
[0040] Still another aspect of the present invention is a nutraceutical formulation comprising a composition detailed above. A nutraceutical formulation comprises a composition described above, as an active ingredient, and an edible carrier. For instance, in some embodiments, the nutraceutical may be a food or food ingredient that comprises a composition described above. Suitable edible carriers are known in the art. (f) preferred embodiments
[0041] In a preferred embodiment, a composition of the invention comprises magnesium ascorbate.
[0042] In another preferred embodiment, a composition of the invention comprises magnesium bisglycinate and ascorbic acid, in a molar ratio of 1 :1 to 5:1 , preferably from 2:1 to 4: 1 .
[0043] In another preferred embodiment, a composition of the invention comprises magnesium chloride and ascorbic acid, in a molar ratio of 1 :1 to 5:1 , preferably from 2:1 to 4: 1 .
[0044] In yet another preferred embodiment, a composition of the invention comprises magnesium oxide and ascorbic acid, in a molar ratio of 3:2.
[0045] In still another preferred embodiment, a composition of the invention comprises magnesium citrate and ascorbic acid, in a molar ratio of 3:2.
II. Methods
[0046] The present disclosure encompasses methods of increasing absorption and bioavailability of magnesium in a subject, methods of treating magnesium deficiency in a subject, and methods of decreasing the side effects of magnesium administration to a subject. As used herein, absorption refers to uptake of magnesium from the lumen of the Gl tract. Bioavailability is used herein to refer to the amount of magnesium that enters systemic circulation after an oral dosage (i.e. the amount absorbed minus the amount lost to the first pass effect).
(a) increasing absorption
[0047] One embodiment of the present disclosure encompasses a method for increasing magnesium absorption in a subject. The method comprises administering a magnesium source and ascorbate to the subject. Suitable sources of magnesium are described in section I above. For instance, suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride. Suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt. [0048] In certain embodiments, the magnesium source and the ascorbate source may be formulated into a single composition. In other embodiments, the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other. For instance, the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other. In each of these embodiments, the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
[0049] The ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1. In still other embodiments, the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
[0050] A method as described herein may be used to increase absorption of magnesium in the Gl tract of a subject at least 55, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, 300,
310, 320, 330, 340, 350, 360, 370, 380, 390, 400, 410, 420, 430, 440, 450, 460, 470,
480, 490, 500, 510, 520, 530, 540, 550, 560, 570, 580, 590, 600, 610, 620, 630, 640,
650, 660, 670, 680, 690, 700 or greater than 700% when compared to the magnesium source alone. In some embodiments, absorption of magnesium in the Gl tract of a subject may increase at least 200%-600%, 200%-400%, 300%-500%, or 400%-600% with a method described herein.
[0051] Typically, the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well. Formulations are described in section I above. (b) increasing bioavailability
[0052] The present disclosure also encompasses methods for increasing magnesium bioavailability in a subject. The method comprises administering a magnesium source and ascorbate to the subject. Suitable sources of magnesium are described in section I above. For instance, suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride. Suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
[0053] In certain embodiments, the magnesium source and the ascorbate source may be formulated into a single composition. In other embodiments, the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other. For instance, the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other. In each of these embodiments, the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
[0054] The ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1. In still other embodiments, the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
[0055] A method as described herein may be used to increase bioavailability of magnesium in the Gl tract of a subject at least 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, 300, or greater than 300% when compared to the magnesium source alone. [0056] Typically, the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well. Formulations are described in section I above.
(c) decreasing side effects
[0057] One embodiment of the present disclosure encompasses a method for decreasing Gl side effects from administering magnesium to a subject. The method comprises administering a magnesium source and ascorbate to the subject. Because the methods of the present disclosure result in increased absorption and bioavailability of magnesium, less magnesium needs to be administered to the subject to achieve the desired magnesium levels in the subject. Suitable sources of magnesium are described in section I above. For instance, suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride. Suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
[0058] In certain embodiments, the magnesium source and the ascorbate source may be formulated into a single composition. In other embodiments, the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other. For instance, the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other. In each of these embodiments, the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
[0059] The ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1. In still other embodiments, the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
[0060] A method as described herein may be used to decrease Gl side effects known to be associated with magnesium supplementation. For instance, a method described herein may reduce stomach upset, nausea, vomiting, or diarrhea.
[0061 ] Typically, the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well. Formulations are described in section I above.
(d) treating magnesium deficiency
[0062] The present disclosure also encompasses methods of treating magnesium deficiency in a subject. The method comprises administering a magnesium source and ascorbate to the subject. Suitable sources of magnesium are described in section I above. For instance, suitable sources of magnesium include magnesium ascorbate, magnesium bisglycinate, and magnesium chloride. Suitable sources of ascorbate are also described in section I above and include ascorbic acid or an ascorbate salt.
[0063] In certain embodiments, the magnesium source and the ascorbate source may be formulated into a single composition. In other embodiments, the magnesium source and the ascorbate source may be formulated separately and administered to the subject within about 15 min of each other. For instance, the magnesium source and the ascorbate source may be administered within about 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, or 15 min of each other. In each of these embodiments, the magnesium source and the ascorbate source may be formulated into pharmaceutical compositions.
[0064] The ratio of magnesium to ascorbate is described in section I above, and typically is between 0.75:1 to 5:1 , and preferably between 1 :1 and 4:1 , or 2:1 and 4:1. In some embodiments, the ratio may be greater than 5: 1 . At molar ratios greater than 5: 1 , increased magnesium absorption may still be seen compared to the same magnesium source without ascorbate, but the increase in absorption is not as great as the increase seen at lower ratios. In some embodiments, the molar ratio of ascorbate to magnesium may vary from about 1 :1 to about 4:1. In other embodiments, the molar ratio of ascorbate to magnesium may vary from about 2: 1 to about 4:1. In still other embodiments, the molar ratio of ascorbate to magnesium may be about 0.75: 1 , 1 :1 , 1.25:1 , 1.5:1 , 1 .75:1 , 2:1 , 2.25:1 , 2.5:1 , 2.75:1 , 3:1 , 3.25:1 , 3.5:1 , 3.75:1 , 4:1 , 4.25:1 , 4.5:1 , 4.75:1 , or 5:1.
[0065] Typically, the magnesium source and the ascorbate are administered to the subject orally, although any other known means of administration may be used as well. Formulations are described in section I above.
(e) effective dose
[0066] As described in section I above, a therapeutically effective dose level for any particular subject will depend upon a variety of factors including the specific composition employed; the age, body weight, general health, sex and diet of the subject; the time of administration; the route of administration; the rate of excretion of the composition employed; the duration of the treatment; drugs used in combination or coincidental with the specific composition employed; and like factors well known in the medical arts (see e.g., Koda-Kimble et al. (2004) Applied Therapeutics: The Clinical Use of Drugs, Lippincott Williams & Wilkins, ISBN 0781748453; Winter (2003) Basic Clinical Pharmacokinetics, 4th ed., Lippincott Williams & Wilkins, ISBN 0781741475; Sharqel (2004) Applied Biopharmaceutics & Pharmacokinetics, McGraw-Hill/Appleton & Lange, ISBN 0071375503). For example, it is well within the skill of the art to start doses of the composition at levels lower than those required to achieve the desired therapeutic effect and to gradually increase the dosage until the desired effect is achieved. If desired, the effective daily dose may be divided into multiple doses for purposes of administration. Consequently, single dose compositions may contain such amounts or submultiples thereof to make up the daily dose. It will be understood, however, that the total daily usage of the compounds and compositions of the present disclosure will be decided by one of appropriate skill in the art.
[0067] Methods of the present disclosure encompasses administration of a composition described herein as a single event or over a time course of treatment. For example, a composition can be administered daily, weekly, bi-weekly, or monthly. For treatment of acute conditions, the time course of treatment will usually be at least several days. Certain conditions could extend treatment from several days to several weeks. For example, treatment could extend over one week, two weeks, or three weeks. For more chronic conditions, treatment could extend from several weeks to several months or even a year or more.
(f) suitable subjects
[0068] Methods of the present invention are suitable for any subject capable of absorbing magnesium via a gastrointestinal tract. In preferred embodiments, the subject is a vertebrate, such as a mammal or a bird. For instance, suitable subjects may include a rodent, a human, a livestock animal, a companion animal, or a zoological animal. In one embodiment, a subject may be a rodent, e.g., a mouse, a rat, a guinea pig, etc. In another embodiment, a subject may be a livestock animal. Non-limiting examples of suitable livestock animals may include chickens, turkeys, pigs, cows, horses, goats, sheep, llamas and alpacas. In still another embodiment, a subject may be a companion animal. Non-limiting examples of companion animals may include pets such as dogs, cats, rabbits, and birds. In yet another embodiment, a subject may be a zoological animal. As used herein, a “zoological animal” refers to an animal that may be found in a zoo. Such animals may include non-human primates, large cats, wolves, and bears. In certain embodiments, a subject may be human. In particular embodiments, a subject may be deficient in magnesium.
EXEMPLARY EMBODIMENTS
[0069] Embodiment 1 : A method for increasing magnesium absorption in a subject, the method comprising administering a magnesium source and ascorbate to the subject.
[0070] Embodiment 2: The method of embodiment 1 , wherein the magnesium source is a magnesium salt.
[0071] Embodiment 3: The method of embodiment 1 , wherein the magnesium source is a magnesium chelate.
[0072] Embodiment 4: The method of embodiment 1 , wherein the ascorbate is from ascorbic acid.
[0073] Embodiment 5: The method of embodiment 1 , wherein the ascorbate is from an ascorbate salt. [0074] Embodiment 6: The method of embodiment 1 , wherein the ascorbate is magnesium ascorbate.
[0075] Embodiment 7: The method of embodiment 1 , wherein the magnesium source and the ascorbate are formulated into a single composition.
[0076] Embodiment 8: The method of embodiment 1 , wherein the magnesium source and the ascorbic acid are administered separately, but within 15 min of each other.
[0077] Embodiment 9: The method of embodiment 1 , wherein the ratio of magnesium to ascorbic acid is between about 1 :1 to about 5:1 .
[0078] Embodiment 10: The method of embodiment 1 , wherein the absorption is increased at least 55%.
[0079] Embodiment 11 : The method of embodiment 1 , wherein absorption is via the subject’s Gl tract.
[0080] Embodiment 12: The method of embodiment 1 , wherein the magnesium and ascorbate are administered orally.
[0081] Embodiment 13: The method of embodiment 1 , wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
[0082] Embodiment 14: A method for increasing magnesium absorption in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
[0083] Embodiment 15: The method of embodiment 14, wherein the magnesium is a magnesium salt.
[0084] Embodiment 16: The method of embodiment 14, wherein the magnesium is a magnesium chelate.
[0085] Embodiment 17: The method of embodiment 14, wherein the ascorbate is from ascorbic acid.
[0086] Embodiment 18: The method of embodiment 14, wherein the ascorbate is from an ascorbate salt.
[0087] Embodiment 19: The method of embodiment 14, wherein the ascorbate is magnesium ascorbate. [0088] Embodiment 20: The method of embodiment 14, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
[0089] Embodiment 21 : The method of embodiment 14, wherein the absorption is increased at least 55%.
[0090] Embodiment 22: The method of embodiment 14, wherein absorption is via the subject’s Gl tract.
[0091] Embodiment 23: The method of embodiment 14, wherein the pharmaceutical composition is administered orally.
[0092] Embodiment 24: The method of embodiment 14, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
[0093] Embodiment 25: The method of embodiment 14, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
[0094] Embodiment 26: The method of embodiment 14, wherein the pharmaceutical composition is a liquid.
[0095] Embodiment 27: A method for increasing magnesium bioavailability in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
[0096] Embodiment 28: The method of embodiment 27, wherein the magnesium is a magnesium salt.
[0097] Embodiment 29: The method of embodiment 27, wherein the magnesium is a magnesium chelate.
[0098] Embodiment 30: The method of embodiment 27, wherein the ascorbate is from ascorbic acid.
[0099] Embodiment 31 : The method of embodiment 27, wherein the ascorbate is from an ascorbate salt.
[0100] Embodiment 32: The method of embodiment 27, wherein the ascorbate is magnesium ascorbate. [0101] Embodiment 33: The method of embodiment 27, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
[0102] Embodiment 34: The method of embodiment 27, wherein the absorption is increased at least 55%.
[0103] Embodiment 35: The method of embodiment 27, wherein absorption is via the subject’s Gl tract.
[0104] Embodiment 36: The method of embodiment 27, wherein the pharmaceutical composition is administered orally.
[0105] Embodiment 37: The method of embodiment 27, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
[0106] Embodiment 38: The method of embodiment 27, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
[0107] Embodiment 39: The method of embodiment 27, wherein the pharmaceutical composition is a liquid.
[0108] Embodiment 40: A method for decreasing side effects from magnesium supplementation in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject.
[0109] Embodiment 41 : The method of embodiment 40, wherein the magnesium is a magnesium salt.
[0110] Embodiment 42: The method of embodiment 40, wherein the magnesium is a magnesium chelate.
[0111] Embodiment 43: The method of embodiment 40, wherein the ascorbate is from ascorbic acid.
[0112] Embodiment 44: The method of embodiment 40, wherein the ascorbate is from an ascorbate salt.
[0113] Embodiment 45: The method of embodiment 40, wherein the ascorbate is magnesium ascorbate. [0114] Embodiment 46: The method of embodiment 40, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
[0115] Embodiment 47: The method of embodiment 40, wherein the side effects include one or more of stomach upset, nausea, diarrhea, and vomiting.
[0116] Embodiment 48: The method of embodiment 40, wherein absorption is via the mammal’s Gl tract.
[0117] Embodiment 49: The method of embodiment 40, wherein the pharmaceutical composition is administered orally.
[0118] Embodiment 50: The method of embodiment 40, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
[0119] Embodiment 51 : The method of embodiment 40, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
[0120] Embodiment 52: The method of embodiment 40, wherein the pharmaceutical composition is a liquid.
[0121] Embodiment 53: A method of treating magnesium deficiency in a subject, the method comprising administering magnesium and ascorbate to the subject.
[0122] Embodiment 54: The method of embodiment 53, wherein the magnesium is a magnesium salt.
[0123] Embodiment 55: The method of embodiment 53, wherein the magnesium is a magnesium chelate.
[0124] Embodiment 56: The method of embodiment 53, wherein the ascorbate is from ascorbic acid.
[0125] Embodiment 57: The method of embodiment 53, wherein the ascorbate is from an ascorbate salt.
[0126] Embodiment 58: The method of embodiment 53, wherein the ascorbate is magnesium ascorbate. [0127] Embodiment 59: The method of embodiment 53, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 .
[0128] Embodiment 60: The method of embodiment 53, wherein the absorption is increased at least 55%.
[0129] Embodiment 61 : The method of embodiment 53, wherein absorption is via the subject’s Gl tract.
[0130] Embodiment 62: The method of embodiment 53, wherein the pharmaceutical composition is administered orally.
[0131] Embodiment 63: The method of embodiment 53, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate.
[0132] Embodiment 64: The method of embodiment 53, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule.
[0133] Embodiment 65: The method of embodiment 53, wherein the pharmaceutical composition is a liquid.
EXAMPLES
[0134] The following examples are included to demonstrate preferred embodiments of the invention. It should be appreciated by those of skill in the art that the techniques disclosed in the examples that follow represent techniques discovered by the inventors to function well in the practice of the invention, and thus can be considered to constitute preferred modes for its practice. However, those of skill in the art should, in light of the present disclosure, appreciate that many changes can be made in the specific embodiments which are disclosed and still obtain a like or similar result without departing from the spirit and scope of the invention.
Example 1
[0135] Caco-2 cells were used to model in vitro magnesium absorption of intestinal cells. The increase in magnesium absorption is dependent on the ratio of magnesium to ascorbic acid. Six different solutions, with magnesium and varying ratios of ascorbate were tested. Each solution comprised 20mM of magnesium. Ascorbic acid ranged from 0 to 50mM, as shown in Fig.1 A. Cells were exposed to one of the six solutions for 4 hours, then the basal media was analyzed for magnesium, using a colorimetric test. Magnesium transport increased with ascorbic acid concentration, as shown in Fig. 1 B. The highest rate of magnesium transport was seen between 20 and 30mM of ascorbic acid. Of note, the pattern is non-linear.
[0136] The experiment has been performed in two iterations, with the same trend apparent in each iteration (see Fig. 1 C).
Example 2
[0137] Various magnesium solutions were tested to determine their impact on magnesium transport: magnesium ascorbate, magnesium bisglycinate, magnesium orotate, magnesium threonate, and magnesium malate (trihydrate and hexahydrate; abbreviated MgM3H20 or MgM6H20 respectively in Fig. 2). Magnesium ascorbate resulted in a statistically significant higher transport rate than any other magnesium solution tested, (see Fig. 2)
Example 3
[0138] Experiments were performed to test the impact of various ascorbic acid concentrations on cell viability. Caco-2 cells were propagated in T-75 tissue culture flasks for 14 days. The cells were then incubated with either 0, 5, 25, or 50mM ascorbic acid for 240 min. Fluorescent probes were used to determine viability. Data show no conclusive evidence that ascorbic acid kills the cells. See Fig. 5. Example 4
[0139] Magnesium transport shows a much greater increase when magnesium ascorbate is used rather than magnesium chloride. Six different treatment concentrations were tested: 0, 5, 10, 15, 20, and 25 mg Mg (ascorbate or chloride). Increasing concentrations of magnesium chloride resulted in increased magnesium transport, in a linear fashion. Increasing concentration of magnesium ascorbate, however, resulted in a significant jump in magnesium transport between the 10mM treatment and the 15mM treatment. In addition, for any given concentration tested, magnesium ascorbate resulted in greater magnesium transport than magnesium chloride, (see Fig. 3) This result was not due to a change in pH resulting from an increase in ascorbic acid concentration.

Claims

CLAIMS What is Claimed Is:
1 . A method for increasing magnesium absorption in a subject, the method comprising administering a magnesium source and ascorbate to the subject.
2. The method of claim 1 , wherein the magnesium source is a magnesium salt.
3. The method of claim 1 , wherein the magnesium source is a magnesium chelate.
4. The method of claim 1 , wherein the ascorbate is from ascorbic acid.
5. The method of claim 1 , wherein the ascorbate is from an ascorbate salt.
6. The method of claim 1 , wherein the ascorbate is magnesium ascorbate.
7. The method of claim 1 , wherein the magnesium source and the ascorbate are formulated into a single composition.
8. The method of claim 1 , wherein the magnesium source and the ascorbic acid are administered separately, but within 15 min of each other.
9. The method of claim 1 , wherein the ratio of magnesium to ascorbic acid is between about 1 :1 to about 5:1 .
10. The method of claim 1 , wherein the absorption is increased at least 55%.
11 . The method of claim 1 , wherein absorption is via the subjects’ Gl tract.
12. The method of claim 1 , wherein the magnesium and ascorbate are administered orally.
24 The method of claim 1 , wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate. A method for increasing magnesium absorption in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The method of claim 14, wherein the magnesium is a magnesium salt. The method of claim 14, wherein the magnesium is a magnesium chelate. The method of claim 14, wherein the ascorbate is from ascorbic acid. The method of claim 14, wherein the ascorbate is from an ascorbate salt. The method of claim 14, wherein the ascorbate is magnesium ascorbate. The method of claim 14, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The method of claim 14, wherein the absorption is increased at least 55%. The method of claim 14, wherein absorption is via the subject’s Gl tract. The method of claim 14, wherein the pharmaceutical composition is administered orally. The method of claim 14, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate. The method of claim 14, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule. The method of claim 14, wherein the pharmaceutical composition is a liquid. A method for increasing magnesium bioavailability in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The method of claim 27, wherein the magnesium is a magnesium salt. The method of claim 27, wherein the magnesium is a magnesium chelate. The method of claim 27, wherein the ascorbate is from ascorbic acid. The method of claim 27, wherein the ascorbate is from an ascorbate salt. The method of claim 27, wherein the ascorbate is magnesium ascorbate. The method of claim 27, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The method of claim 27, wherein the absorption is increased at least 55%. The method of claim 27, wherein absorption is via the subject’s Gl tract. The method of claim 27, wherein the pharmaceutical composition is administered orally. The method of claim 27, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate. The method of claim 27, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule. The method of claim 27, wherein the pharmaceutical composition is a liquid. A method for decreasing side effects from magnesium supplementation in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The method of claim 40, wherein the magnesium is a magnesium salt. The method of claim 40, wherein the magnesium is a magnesium chelate. The method of claim 40, wherein the ascorbate is from ascorbic acid. The method of claim 40, wherein the ascorbate is from an ascorbate salt. The method of claim 40, wherein the ascorbate is magnesium ascorbate. The method of claim 40, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The method of claim 40, wherein the side effects include one or more of stomach upset, nausea, diarrhea, and vomiting. The method of claim 40, wherein absorption is via the subject’s Gl tract. The method of claim 40, wherein the magnesium and ascorbate are administered orally.
27 The method of claim 40, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate. The method of claim 40, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule. The method of claim 40, wherein the pharmaceutical composition is a liquid. A method of treating magnesium deficiency in a subject, the method comprising administering a pharmaceutical composition comprising magnesium and ascorbate to the subject. The method of claim 53, wherein the magnesium is a magnesium salt. The method of claim 53, wherein the magnesium is a magnesium chelate. The method of claim 53, wherein the ascorbate is from ascorbic acid. The method of claim 53, wherein the ascorbate is from an ascorbate salt. The method of claim 53, wherein the ascorbate is magnesium ascorbate. The method of claim 53, wherein the ratio of magnesium to ascorbic acid in the pharmaceutical composition is between about 1 :1 to about 5:1 . The method of claim 53, wherein the absorption is increased at least 55%. The method of claim 53, wherein absorption is via the subject’s Gl tract. The method of claim 53, wherein the pharmaceutical composition is administered orally.
28 The method of claim 53, wherein the subject is selected from the group consisting of a livestock animal, a human, or a non-human primate. The method of claim 53, wherein the pharmaceutical composition is a solid dosage form selected from the group consisting of a tablet, a capsule, a powder, or a granule. The method of claim 53, wherein the pharmaceutical composition is a liquid.
29
EP21887504.5A 2020-10-28 2021-10-28 Methods of increasing magnesium bioavailability and absorption Pending EP4236699A4 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US202063106543P 2020-10-28 2020-10-28
PCT/US2021/057021 WO2022094057A1 (en) 2020-10-28 2021-10-28 Methods of increasing magnesium bioavailability and absorption

Publications (2)

Publication Number Publication Date
EP4236699A1 true EP4236699A1 (en) 2023-09-06
EP4236699A4 EP4236699A4 (en) 2024-07-17

Family

ID=81258808

Family Applications (1)

Application Number Title Priority Date Filing Date
EP21887504.5A Pending EP4236699A4 (en) 2020-10-28 2021-10-28 Methods of increasing magnesium bioavailability and absorption

Country Status (3)

Country Link
US (2) US11826346B2 (en)
EP (1) EP4236699A4 (en)
WO (1) WO2022094057A1 (en)

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2567369B3 (en) * 1984-07-13 1986-12-19 Cauet Madeleine FOOD ADDITIVE BASED ON MAGNESIUM ASCORBATE
US5626883A (en) 1994-04-15 1997-05-06 Metagenics, Inc. Ascorbic acid compositions providing enhanced human immune system activity
US5849338A (en) * 1996-04-10 1998-12-15 Chronorx Llc Unit dosage forms for treatment of vasoconstriction and related conditions
US5849337A (en) * 1997-06-27 1998-12-15 Gusty Winds Corporation Method of enhancing magnesium absorption and prevention of atherosclerosis
YU33100A (en) * 2000-05-31 2002-10-18 Milorad Dimitrijević Procedure for obtaining zinc ascorbate and magnesium-ascorbate and preparations obtained thereof
WO2003003981A2 (en) 2001-07-05 2003-01-16 Vital Basics, Inc. Compositions for improving mental performance
US8017160B2 (en) * 2003-08-15 2011-09-13 Russell Jaffe Enhancement of magnesium uptake in mammals
US20050220865A1 (en) 2004-04-02 2005-10-06 Koleng John J Compressed composition comprising magnesium salt
US8178132B2 (en) 2007-03-22 2012-05-15 Magceutics, Inc. Magnesium-containing food compositions
WO2011003045A1 (en) * 2009-07-01 2011-01-06 Magceutics, Inc. Slow release magnesium composition and uses thereof
IT201800007747A1 (en) * 2018-08-01 2020-02-01 Pharmanutrition R&D Srl Nutraceutical formulation for the control of mild to moderate arterial hypertension

Also Published As

Publication number Publication date
US11826346B2 (en) 2023-11-28
WO2022094057A1 (en) 2022-05-05
US20240016780A1 (en) 2024-01-18
US20220125759A1 (en) 2022-04-28
EP4236699A4 (en) 2024-07-17

Similar Documents

Publication Publication Date Title
US9616133B2 (en) Orally administrable gallium compositions and methods of use
ES2343354T3 (en) PHARMACEUTICAL FORMULATION THAT INCLUDES LANTANE COMPOUNDS.
JP4754731B2 (en) Pig growth promoter and method for promoting pig growth
ES2286425T3 (en) NEW COMPLEXES OF CHROME (III) AND ALFA-AMINO ACIDS.
US7820640B2 (en) Methods for treating hearing loss
US5780489A (en) Method for treating amyotrophic lateral sclerosis
RU2000131221A (en) NEW ANALOGUES OF FATTY ACIDS FOR TREATMENT OF DIABETES
US6521266B1 (en) Composition for growth hormone production and release, appetite suppression, and methods related thereto
McAllister et al. Sulphide-induced polioencephalomalacia in lambs
EP0516594A1 (en) L-carnitine derivatives as therapeutical agents for treating myopathies and neuronal degeneration and for inhibiting proteolysis
US11826346B2 (en) Methods of increasing magnesium bioavailability and absorption
CN109310669B (en) Use of carbamate compounds for preventing or treating trigeminal neuralgia
EP3461479A1 (en) Nutraceutical and pharmaceutical compositions, and uses thereof for preserving cognitive functions
RU2402323C1 (en) Method of treating milker hepatosis in technogenic provinces with nickel and lead excess
US3838196A (en) Method of treating arteriosclerosis
EP0614361A1 (en) Composition and method for reducing free radical cellular oxidative stress in warm-blooded animals
EP3868375A1 (en) Use of carbamate compound for preventing, alleviating or treating diabetic peripheral neuropathy or chemotherapy-induced peripheral neuropathy
RU2343906C2 (en) Method of correction and prevention of pathological conditions of animals
US20140271908A1 (en) Dietary supplements and methods for preventing and treating migraines
JPWO2006043336A1 (en) Composition for treating or preventing gastric mucosal disease
RU2268040C2 (en) Preparation for treating diarrhea in youngsters of farm animals and method for its application
JP3058659B2 (en) Minerals in bioavailable form
RU2308188C2 (en) Application of feedstuff treated with "hymizyme" polyenzymatic preparation in case of intoxication with heavy metals in animals and hens
CN108420810A (en) Phenylpyruvic acid is preparing the application in alleviating or improving the product of anxiety and Depressive behavior
Howell 5.1 Toxicity Problems associated with Trace Elements in Domestic Animals

Legal Events

Date Code Title Description
STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE

PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE

17P Request for examination filed

Effective date: 20230504

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

DAV Request for validation of the european patent (deleted)
DAX Request for extension of the european patent (deleted)
REG Reference to a national code

Ref country code: DE

Ref legal event code: R079

Free format text: PREVIOUS MAIN CLASS: A23L0029200000

Ipc: A61K0031375000

A4 Supplementary search report drawn up and despatched

Effective date: 20240617

RIC1 Information provided on ipc code assigned before grant

Ipc: A61P 3/02 20060101ALI20240611BHEP

Ipc: A61K 9/00 20060101ALI20240611BHEP

Ipc: A61K 33/06 20060101ALI20240611BHEP

Ipc: A23L 29/20 20160101ALI20240611BHEP

Ipc: A61K 31/375 20060101AFI20240611BHEP